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dc.contributor.authorMarqués Marzal, Ana Isabel
dc.contributor.authorGarcía, Vicente
dc.contributor.authorSánchez Garreta, Josep Salvador
dc.date.accessioned2013-07-09T17:51:29Z
dc.date.available2013-07-09T17:51:29Z
dc.date.issued2012
dc.identifier.issn0957-4174
dc.identifier.urihttp://hdl.handle.net/10234/70101
dc.description.abstractMany techniques have been proposed for credit risk assessment, from statistical models to artificial intelligence methods. During the last few years, different approaches to classifier ensembles have successfully been applied to credit scoring problems, demonstrating to be generally more accurate than single prediction models. The present paper goes one step beyond by introducing composite ensembles that jointly use different strategies for diversity induction. Accordingly, the combination of data resampling algorithms (bagging and AdaBoost) and attribute subset selection methods (random subspace and rotation forest) for the construction of composite ensembles is explored with the aim of improving the prediction performance. The experimental results and statistical tests show that this new two-level classifier ensemble constitutes an appropriate solution for credit scoring problems, performing better than the traditional single ensembles and very significantly better than individual classifiers.ca_CA
dc.format.extent7 p.ca_CA
dc.format.mimetypeapplication/pdfca_CA
dc.language.isoengca_CA
dc.publisherElsevierca_CA
dc.relation.isPartOfExpert Systems with Applications, 2012 september, Volume 39, Issue 12ca_CA
dc.rights© 2012 Elsevier Ltd. All rights reserved.ca_CA
dc.rights.urihttp://rightsstatements.org/vocab/InC/1.0/*
dc.subjectCredit scoringca_CA
dc.subjectClassifier ensembleca_CA
dc.subjectBaggingca_CA
dc.subjectBoostingca_CA
dc.subjectRandom subspaceca_CA
dc.subjectRotation forestca_CA
dc.titleTwo-level classifier ensembles for credit risk assessmentca_CA
dc.typeinfo:eu-repo/semantics/articleca_CA
dc.identifier.doihttp://dx.doi.org/10.1016/j.eswa.2012.03.033
dc.rights.accessRightsinfo:eu-repo/semantics/restrictedAccessca_CA
dc.relation.publisherVersionhttp://www.sciencedirect.com/science/article/pii/S0957417412005039ca_CA
dc.type.versioninfo:eu-repo/semantics/publishedVersionca_CA


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